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Neural compensation in adulthood following very preterm birth demonstrated during a visual paired associates learning
Philip J Brittain1, Sean Froudist Walsh1, Kie-Woo Nam1
1Department of Psychosis Studies, Neurodevelopment and Mental Health Group, Institute of Psychiatry, King's College London, De Crespigny Park, London, SE5 8AF, UK.
Insights
Very preterm birth (VPT) survivors show similar learning abilities but different brain activity patterns in adulthood compared to controls. These neural differences may reflect compensatory mechanisms following early brain injury.
Area of Science:
- Neuroscience
- Developmental Psychology
- Medical Imaging
Background:
- Very preterm birth (< 33 weeks gestation) is linked to learning disabilities and academic underachievement.
- These learning difficulties may stem from neurodevelopmental alterations due to perinatal brain injury.
- Adaptive neuroplasticity might mitigate some long-term effects of altered neurophysiology in the preterm brain.
Purpose of the Study:
- To compare neuronal activation using fMRI in young adults born very preterm versus controls during a visual learning task.
- To investigate potential structure-function associations using structural MRI data.
- To explore differences in brain activity patterns indicative of learning processes between the groups.
Main Methods:
- Functional magnetic resonance imaging (fMRI) to assess Blood Oxygenation Level Dependant (BOLD) activity during encoding and recognition.
- A visual paired-associate learning task involving repeated trials.
- Structural MRI to analyze grey matter volume and its correlation with functional activation.
Main Results:
- No significant differences in overall learning ability (recognition accuracy) between very preterm and control groups.
- Significant between-group differences in BOLD activity patterns during both encoding and recognition phases.
- Distinct patterns of activation in areas including the cerebellum, frontal gyri, and medial temporal gyrus in the very preterm group.
- Smaller grey matter volume in the right middle temporal gyrus was observed in the very preterm group, but not significantly correlated with functional activation.
Conclusions:
- Cognitive performance on this learning task was comparable between very preterm individuals and controls.
- Differences in BOLD signal patterns suggest distinct neural processes underlying learning in very preterm individuals.
- Observed neural differences may represent compensatory mechanisms in response to very preterm birth-related brain insults.
Abstract:
Very preterm birth (VPT; < 33 weeks of gestation) is associated with an increased risk of learning disability, which contributes to more VPT-born children repeating grades and underachieving in school. Learning problems associated with VPT birth may be caused by pathophysiological alterations in neurodevelopment resulting from perinatal brain insult; however, adaptive neuroplastic processes may subsequently occur in the developing preterm brain which ameliorate, to an extent, the potential sequelae of altered neurophysiology. Here, we used functional magnetic resonance imaging (fMRI) to compare neuronal activation in 24 VPT individuals and 22 controls (CT) in young adulthood during a learning task consisting of the encoding and subsequent recognition of repeated visual paired associates. Structural MRI data were also collected and analysed in order to explore possible structure-function associations. Whilst the two groups did not differ in their learning ability, as demonstrated by their capacity to recognize previously-seen and previously-unseen visual pairs, between-group differences in linear patterns of Blood Oxygenation Level Dependant (BOLD) activity were observed across the four repeated blocks of the task for both the encoding and recognition conditions, suggesting that the way learning takes place differs between the two groups. During encoding, significant between-group differences in patterns of BOLD activity were seen in clusters centred on the cerebellum, the anterior cingulate gyrus, the midbrain/substantia nigra, medial temporal (including parahippocampal) gyrus and inferior and superior frontal gyri. During the recognition condition, significant between-group differences in patterns of BOLD activity were seen in clusters centred on the claustrum and the posterior cerebellum. Structural analysis revealed smaller grey matter volume in right middle temporal gyrus in VPT individuals compared to controls, however volume in this region was not significantly associated with functional activation. These results demonstrate that although cognitive task performance between VPT individuals and controls may be comparable on certain measures, differences in BOLD signal may also be evident, some of which could represent compensatory neural processes following VPT-related brain insult.
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